Oscillating bound states in non-Markovian photonic lattices
- URL: http://arxiv.org/abs/2208.11097v1
- Date: Tue, 23 Aug 2022 17:16:13 GMT
- Title: Oscillating bound states in non-Markovian photonic lattices
- Authors: Kian Hwee Lim, Wai-Keong Mok, Leong-Chuan Kwek
- Abstract summary: We perform exact calculations for the oscillating BICs in a 1D photonic lattice coupled to "giant atom" at multiple points.
We show that the bound states outside the energy band are detrimental to the oscillating BIC phenomenon.
Our work can be experimentally implemented on current photonic waveguide array platforms.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: It is known that the superposition of two bound states in the continuum (BIC)
leads to the phenomenon of an oscillating bound state, where excitations
mediated by the continuum modes oscillate persistently. We perform exact
calculations for the oscillating BICs in a 1D photonic lattice coupled to
"giant atom" at multiple points. Our work is significantly distinct from
previous proposals of oscillating BICs in continuous waveguide systems due to
the presence of a finite energy band contributing band-edge effects. In
particular, we show that the bound states outside the energy band are
detrimental to the oscillating BIC phenomenon, and can be suppressed by
increasing either the number of coupling points or the separation between each
coupling point. Crucially, non- Markovianity is necessary for the existence of
oscillating BIC, and the oscillation amplitude increases with the
characteristic delay time of the giant atom interactions. Our work can be
experimentally implemented on current photonic waveguide array platforms and
opens up new prospects in utilizing reservoir engineering for the storage of
quantum information in photonic lattices.
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